Microrheometric study of damage and rupture of capsules in simple shear flow.

IF 3.6 2区 工程技术 Q1 MECHANICS Journal of Fluid Mechanics Pub Date : 2024-12-03 eCollection Date: 2024-12-10 DOI:10.1017/jfm.2024.952
C El Mertahi, N Grandmaison, C Dupont, R Jellali, D Brancherie, A-V Salsac
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Abstract

Capsules, which are potentially-active fluid droplets enclosed in a thin elastic membrane, experience large deformations when placed in suspension. The induced fluid-structure interaction stresses can potentially lead to rupture of the capsule membrane. While numerous experimental studies have focused on the rheological behavior of capsules until rupture, there remains a gap in understanding the evolution of their mechanical properties and the underlying mechanisms of damage and breakup under flow. We here investigate the damage and rupture of bioartificial microcapsules made of ovalbumin reticulated with terephthaloyl chloride and placed in simple shear flow. We characterize damage by identifying how the surface shear modulus of the capsule membrane changes over time. Rupture is then characterized by comparing the number and size distribution of capsules before and after exposure to shear, while varying the shear rates and time during which capsules are sheared. Our findings reveal how the percentage of ruptured capsules increases with their size, exposure time to shear, and the ratio of viscous to elastic forces at rupture.

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单纯剪切流中囊体损伤与破裂的微流变学研究。
胶囊是包裹在弹性薄膜中的潜在活性液滴,在悬浮状态下会产生较大的变形。诱发的流体-结构相互作用应力有可能导致胶囊膜破裂。虽然大量实验研究都集中在胶囊破裂前的流变行为上,但对其机械特性的演变以及流动下的损伤和破裂的基本机制的了解仍是空白。在此,我们研究了由卵清蛋白与对苯二甲酰氯网状连接而成并置于简单剪切流中的生物人工微胶囊的损伤和破裂。我们通过确定胶囊膜表面剪切模量随时间的变化来描述损伤的特征。然后,通过比较胶囊暴露于剪切力前后的数量和大小分布,同时改变剪切速率和胶囊被剪切的时间,来确定破裂的特征。我们的研究结果揭示了破裂胶囊的百分比是如何随着胶囊的大小、暴露于剪切力的时间以及破裂时粘性力与弹性力的比率而增加的。
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来源期刊
CiteScore
6.50
自引率
27.00%
发文量
945
审稿时长
5.1 months
期刊介绍: Journal of Fluid Mechanics is the leading international journal in the field and is essential reading for all those concerned with developments in fluid mechanics. It publishes authoritative articles covering theoretical, computational and experimental investigations of all aspects of the mechanics of fluids. Each issue contains papers on both the fundamental aspects of fluid mechanics, and their applications to other fields such as aeronautics, astrophysics, biology, chemical and mechanical engineering, hydraulics, meteorology, oceanography, geology, acoustics and combustion.
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